RFUAV
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RFUAV数据集是由浙江科技大学信息科学与工程学院开发的高质量原始射频数据集,包含37种不同无人机的约1.3 TB原始频率数据。该数据集旨在解决现有无人机检测数据集类型单一、数据量不足、信号-to-噪声比(SNR)范围有限等问题,提供了丰富的SNR级别和用于特征提取的基准预处理方法及模型评估工具。数据集适用于射频无人机检测和识别,有助于推动相关技术的研究与应用。
The RFUAV dataset is a high-quality raw radio frequency (RF) dataset developed by the School of Information Science and Engineering, Zhejiang University of Science and Technology. It contains approximately 1.3 TB of raw frequency data collected from 37 distinct unmanned aerial vehicles (UAVs). This dataset aims to address the limitations of existing UAV detection datasets, including single data type, insufficient data volume, and limited signal-to-noise ratio (SNR) range. It provides rich SNR levels, benchmark preprocessing methods for feature extraction, and model evaluation tools. The dataset is applicable to RF-based UAV detection and recognition, and contributes to promoting the research and application of related technologies.




